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33 results for “Cladoniaceae”
FIG. 2. — A in Taxonomic notes on Pycnothelia Dufour and Gymnoderma Nyl. (Cladoniaceae) in Madagascan Region
FIG. 2. — A, Pycnothelia mascarena (Nyl.) Nyl., Réunion, Lepervanche-Méziéres 116 (PC-Thuret); B, Pycnothelia caliginosa D.J.Galloway & P.James, New Zealand, Galloway s.n. (isotype, H). Photo: Sanna Laine; C, Pycnothelia papillaria Dufour, Canada, New Brunswick, Ahti 74425 & Clayden (H). Photo: Sanna Laine; D; Pycnothelia papillaria, Canada, Ontario, Burgaz s.n. (MACB); E, Gymnoderma coccocarpum Nyl., Taiwan, Stenroos 3462 (H); F, Gymnoderma coccocarpum (Synonym of Heterodea madagascarea), Réunion, v.d. Boom 40494 (H). Scale bars: 1 cm.
FIG. 1 in Taxonomic notes on Pycnothelia Dufour and Gymnoderma Nyl. (Cladoniaceae) in Madagascan Region
FIG. 1. — Phylogeny of Cladoniaceae based on ITS rDNA, ef1α and rpb2. 50% consensus majority tree from the Bayesian analyses. Branches supported with p.p. ≥0.95 and bootstrap values ≥75% are in bold.
FIG. 15 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 15. — Cladonia novochlorophaea (Sipman) Brodo & Ahti: A, habit (BP[BP 9314]); B, spots of lichen secondary metabolites on chromatographic plates; C, distribution in Hungary. Abbreviations: H, homosekiaic acid; F, fumarprotocetraric acid; Z, zeorin; N, norstictic acid. Scale bar: A, 2 mm.
FIG. 8 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 8. — The mean diameter of soredia (µm) measured on podetia (n = 10). Abbreviations: asa, C. asahinae (n = 22); chlo, C. chlorophaea (n = 55); cry, C. cryptochlorophaea (n = 53); gra, C. grayi (n = 17); mero, C. merochlorophaea (n = 70); novo, C. novochlorophaea (n = 10). The lines represent the minimum and maximum values, the box represents the 25% and 75% of the data, the thick line represents the median. Means with the same letter are not significantly different at 95% confidence.
FIG. 5 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 5. — Height of cup (mm) in different species. Abbreviations: asa, C. asahinae (n = 22); chlo, C. chlorophaea (n = 55); cry, C. cryptochlorophaea (n = 53); gra, C. grayi (n = 17); mero, C. merochlorophaea (n = 70); novo, C. novochlorophaea (n = 10). The lines represent the minimum and maximum values, the box represents the 25% and 75% of the data, the thick line represents the median. Means with the same letter are not significantly different at 95% confidence.
FIG. 9 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 9. — Conditional inference tree presenting the five most important morphological variables separating species: CH, height of cup; CW, width of cup; PH, height of podetium; SW, width of podetium stalk. The order of the species at the end of the nodes is as follows: a, C. asahinae; c, C. chlorophaea; cr, C. cryptochlorophaea; g, C. grayi; m, C. merochlorophaea; n, C. novochlorophaea. Boxes represent the highest probability of a species occurrence on the tree node. A level of p <0.05 was considered for a significant difference.
FIG. 12 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 12. — Cladonia cryptochlorophaea Asahina: A, habit (BP[BP 48938]); B, spots of lichen secondary metabolites on chromatographic plates; C, distribution in Hungary. Abbreviations: c, cryptochlorophaeic acid; nR, norrangiformic acid; F, fumarprotocetraric acid; Z, zeorin; N, norstictic acid. Scale bar: A, 2 mm.
FIG. 7 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 7. — Width of podetium stalk (mm) in different species. Abbreviations: asa, C. asahinae (n = 22); chlo, C. chlorophaea (n = 55); cry, C. cryptochlorophaea (n = 53); gra, C. grayi (n = 17); mero, C. merochlorophaea (n = 70); novo, C. novochlorophaea (n = 10). The lines represent the minimum and maximum values, the box represents the 25% and 75% of the data, the thick line represents the median. Means with the same letter are not significantly different at 95% confidence.
FIG. 11 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 11. — Cladonia chlorophaea (FlÖrke ex Sommerf.) Spreng.: A, habit (BP[BP 49014]); B, spots of lichen secondary metabolites on chromatographic plates; C, distribution in Hungary. Abbreviations: F, fumarprotocetraric acid; Z, zeorin; N, norstictic acid. Scale bar: A, 2 mm.
FIG. 6 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 6. — Width of cup (mm) in different species. Abbreviations: asa, C. asahinae (n = 22); chlo, C. chlorophaea (n = 55); cry, C. cryptochlorophaea (n = 53); gra, C. grayi (n = 17); mero, C. merochlorophaea (n = 70); novo, C. novochlorophaea (n = 10). The lines represent the minimum and maximum values, the box represents the 25% and 75% of the data, the thick line represents the median. Means with the same letter are not significantly different at 95% confidence.
FIG. 10. — Cladonia asahinae J.W in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 10. — Cladonia asahinae J.W.Thomson: A, habit (BP[BP 9421]); B, spots of lichen secondary metabolites on chromatographic plates; C, distribution in Hungary. Abbrevations: R, rangiformic acid; nR, norrangiformic acid; F, fumarprotocetraric acid; Z, zeorin; N, norstictic acid. Scale bar: A, 2 mm.
FIG. 3 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 3. — Conditional inference tree presenting the presence of the three most abundant lichen secondary metabolites occurring in more than one species of the C. chlorophaea species group. A level of p <0.05 was considered for a significant difference. Abbreviations: cch, cryptochlorophaeic acid; ran, rangiformic acid; tha, thamnolic acid; a, C. asahinae; ch, C. chlorophaea; cr, C. cryptochlorophaea; g, C. grayi; me, C. merochlorophaea; no, C. novochlorophaea. Boxes represent the highest probability of a species occurrence on the tree node.
FIG. 4 in Analysis of lichen secondary metabolites and morphometrics in the Cladonia chlorophaea species group (Cladoniaceae, lichenized Ascomycota) in Hungary
FIG. 4. — Height of podetia (mm) of the different species. Abbreviations: asa, C. asahinae (n = 22); chlo, C. chlorophaea (n = 55); cry, C. cryptochlorophaea (n = 53); gra, C. grayi (n = 17); mero, C. merochlorophaea (n = 70); novo, C. novochlorophaea (n = 10). The lines represent the minimum and maximum values, the box represents the 25% and 75% of the data, the thick line represents the median. Means with the same letter are not significantly different at 95% confidence.
Fig. 4 in Phenotypical plasticity and homoplasy complicate species delimitation in the Cladonia gracilis group (Cladoniaceae, Ascomycota)
Fig. 4 Principal component analysis (PCA) based on seven morphological and anatomical variables of C. coniocraea and C. ochrochlora
Fig. 2 in Phenotypical plasticity and homoplasy complicate species delimitation in the Cladonia gracilis group (Cladoniaceae, Ascomycota)
Fig. 2 Phylogeny of the Cladonia coniocraea and C. ochrochlora complex. 50% Majority rule Bayesian tree based on ITS rDNA, IGS, RPB2 and EF1-α. Branches supported with posterior probability ≥0.95 and bootstrap>70% are indicated in bold. Bootstrap value>70% for MP/ Bootstrap value>70% for ML/posterior probability>0.95 for Bayesian analysis at branches
FIGURE 2. Cladonia flavocrispata. A in Ten new species of Cladonia (Cladoniaceae, Lichenized Fungi) from the Guianas and Venezuela, South America
FIGURE 2. Cladonia flavocrispata. A. isotype (B); B. Guyana specimen of uncertain affinity (Sipman 40299 (B)). Bar = 2 cm.
FIGURE 5. a in The Family Cladoniaceae (Lecanorales) in the Galapagos Islands
FIGURE 5. a the predominantly sorediate podetia of Cladonia macilenta (Bungartz 7758, scale 3 mm); b highly dissected, minute squamules with very short podetia, characteristic of Cladonia nana (Aptroot 64501, scale 5 mm); c–d Cladonia polyscypha. c general growth aspect (Bungartz 3970, scale 5 mm); d close-up with podetia terminating in narrow scyphi (Aptroot 64514, scale 5 mm); e podetia of Cladonia pulverulenta (Aptroot 64518, scale 5 mm); f broad, trumpet-shaped podetia with coarse corticate granules
FIGURE 2. a–b in The Family Cladoniaceae (Lecanorales) in the Galapagos Islands
FIGURE 2. a–b Cladonia bungartzii (holotype, Bungartz 5744); a general thallus aspect (scale 2 mm); b close-up of the podetia (scale 1 mm); c general thallus aspect of Cladonia cartilaginea (Nugra 240, scale 5 mm); d general thallus aspect of Cladonia ceratophylla (Bungartz 5604, scale 5 mm); e–f cone-shaped, granulose-sorediate podetia of Cladonia chlorophaea; e (Bungartz 8223, scale 5 mm); f (Bungartz 6614, scale 5 mm).
FIGURE 1. a–b in The Family Cladoniaceae (Lecanorales) in the Galapagos Islands
FIGURE 1. a–b Cladia aggregata (Bungartz 3971). a bifurcate apices of the pseudopodetia (scale 5 mm); b close-up with characteristic oval perforations (scale 3 mm). c–d Cladonia arbuscula subsp. boliviana (Bungartz 8338). c general thallus aspect (scale 5 mm); d podetial apices showing the predominantly anisotomic dichotomous branching pattern (scale 5 mm). e–f Cladonia arcuata (Bungartz 7495); e general thallus aspect (scale 3 mm); f podetial apices showing the predominantly isotomic dichotomous branching pattern (scale 2 mm).
FIGURE 4. a–b Cladonia corymbosula. a in The Family Cladoniaceae (Lecanorales) in the Galapagos Islands
FIGURE 4. a–b Cladonia corymbosula. a basal squamules (Bungartz 4129, scale 5 mm); b podetia with turban-like apothecia (Aptroot 65255, scale 3 mm); c–d Cladonia dactylota; c atypical, because unusually well-developed podetia (Aptroot 64643, scale 5 mm); d close–up of characteristic squamules (Aptroot 64667, scale 5 mm). e predominantly microsquamulose podetia of Cladonia didyma (Bungartz 4109, scale 5 mm); f tiered podetia of Cladonia grayi (Bungartz 8344, scale 5 mm).
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